Center for Biopharmaceuticals, Department of Drug Design and Pharmacology, University of Copenhagen, 2100 Copenhagen, Denmark.
Center for Biopharmaceuticals, Department of Drug Design and Pharmacology, University of Copenhagen, 2100 Copenhagen, Denmark.
Cell Rep. 2018 Feb 6;22(6):1615-1626. doi: 10.1016/j.celrep.2018.01.029.
Fluorescent labels offer the capability to follow conformational dynamics of membrane proteins, but signal detection in such recordings is inherently difficult to achieve in a cell membrane and lacks sufficient time resolution to follow physiologically relevant transitions. Here, we develop high-sensitivity patch-clamp fluorometry (hsPCF), a fluorescence-based approach that results in up to 10-fold increased signals and affords 50-fold faster fluorescence recordings than previous methods. The increased time resolution is paired with a very high versatility in terms of the choice of fluorescent dye, cell type, and protein of interest. We highlight this versatility by providing insight into the conformational dynamics of both ligand- and voltage-gated ion channels using fluorescent labels introduced in extracellular or transmembrane positions while changing either the extra- or intracellular solutions. Together, hsPCF will thus enable the future study of membrane-embedded proteins with sufficient temporal resolution to resolve conformational dynamics.
荧光标记物提供了跟踪膜蛋白构象动力学的能力,但在细胞膜中进行这种记录的信号检测本质上很困难,并且缺乏足够的时间分辨率来跟踪生理相关的转变。在这里,我们开发了高灵敏度膜片钳荧光法(hsPCF),这是一种基于荧光的方法,可将信号提高多达 10 倍,并提供比以前的方法快 50 倍的荧光记录。增加的时间分辨率与荧光染料、细胞类型和感兴趣的蛋白质的选择非常高的多功能性相结合。我们通过使用在细胞外或跨膜位置引入的荧光标记物来提供对配体门控和电压门控离子通道构象动力学的深入了解,同时改变细胞外或细胞内溶液,从而突出这种多功能性。总之,hsPCF 将能够以足够的时间分辨率来研究膜嵌入蛋白,以解析构象动力学。